Senior Machine Learning Engineer, Trust

Latitude

San Francisco, Northern (CA, KY)

Hybrid

USD 200,000 - 235,000

Full time

10 days ago

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Job summary

Airbnb is seeking a Senior Machine Learning Engineer to join the Trust Frontier AI team. You will own and deliver ML projects end-to-end, from framing problems to productionizing models, to proving impact on top-line metrics with front-line teams.

You will work on abuse detection, AI agents that automate trust decisions, and evaluation benchmarks to ensure trustworthy outcomes. The role emphasizes early decisions and measurable platform impact.

Qualifications

  • 5-10 years of industry experience in applied Machine Learning, with a track record of building and productionizing models at scale.
  • 1-2+ years of hands-on experience with LLMs and GenAI technologies, including building with agentic frameworks, orchestration, and evaluation.
  • Strong programming skills in Python (required) and familiarity with Scala, Java, or equivalent.
  • Solid understanding of Machine Learning best practices — e.g., training/serving skew minimization, A/B testing, feature engineering, model selection — and algorithms such as gradient boosted trees, neural networks, transformers, and deep learning.
  • Experience with ML frameworks and tooling such as TensorFlow, PyTorch, or equivalent.
  • Experience with data engineering and building end-to-end ML pipelines, including both batch and real-time systems.
  • Experience designing evaluation methodology for ML or LLM systems — benchmarks, ground truth, offline/online metrics, calibration.
  • Comfort with ambiguity and a bias toward action: you can take a loosely defined problem, scope it, prototype quickly, and drive it to a measurable outcome.
  • Exposure to architectural patterns of large, high-scale software applications (e.g., well-designed APIs, high-volume data pipelines, efficient algorithms).
  • Experience with test-driven development, incremental delivery, and deployment practices.
  • Experience with multimodal models (vision, document, or speech) is a plus.
  • Exposure to the Trust and Risk domain (e.g., fraud detection, anomaly detection, identity, account integrity) is a plus.
  • A Bachelor's, Master's, or PhD in CS/ML or a related field.

Responsibilities

  • Frame and prototype ML and agentic solutions for problems that do not yet have an established approach, in partnership with product managers, data scientists, and front line defense teams.
  • Design, build, and productionize end-to-end Machine Learning pipelines — including feature engineering, model training, evaluation, and deployment — for both batch and real-time use cases.
  • Build and improve abuse behavior detection that generalizes across defenses.
  • Design, launch, and iterate on AI agents that automate trust decisions, including orchestration, tool interfaces, and the guardrails that hold quality steady as autonomy increases.
  • Build benchmarks, evaluation harnesses, and instrumentation that let us measure agentic and model decision quality objectively, and use them to drive real improvements.
  • Develop specialized models for trust and safety use cases, and use LLMs and AI agents to accelerate how we build models.
  • Write, review, and ship clean, testable code — whether training a new model, improving an existing pipeline, or optimizing a feature for scalability and reliability.
  • Work with large-scale structured and unstructured data to continuously improve ML models for Airbnb product, business, and operational use cases.
  • Partner with front line defense teams to validate solutions through experiments and holdouts, and quantify their impact on business and operational metrics.
  • Participate in code reviews, design discussions, and cross-team collaborations to contribute to a high-quality ML engineering culture.

Skills

Python
LLMs and GenAI
ML at scale
API design
Ambiguity tolerance

Education

Bachelor's/Master's/PhD in CS/ML

Tools

TensorFlow
PyTorch
Scala/Java

Job description

Airbnb was born in 2007 when two hosts welcomed three guests to their San Francisco home, and has since grown to over 5 million hosts who have welcomed over 2 billion guest arrivals in almost every country across the globe. Every day, hosts offer unique stays and experiences that make it possible for guests to connect with communities in a more authentic way.

The Community You Will Join

Everyone at Airbnb thinks about trust, but our team obsesses over it daily. At the core of trust is safety, and thus we spend a significant amount of our time and energy keeping the community safe. The Trust team is responsible for developing the technology that helps protect our community and platform from fraud while also ensuring our hosts, guests, homes, and experiences meet our high standards. We constantly work to fight against online fraud (such as monetary loss, compromised accounts, spam and scam in messages, fake inventory, etc.) as well as offline fraud (theft, property damage, personal safety, etc.). We also work on onboarding and screening of users, and think about complex topics like identity and reputation to ensure that every interaction with Airbnb helps build trust in us and our community.

The Difference You Will Make

As a Senior Machine Learning Engineer on the Trust Frontier AI team, you will actively contribute code and ideas that shape the next generation of AI systems protecting millions of Airbnb users. You'll own and deliver ML projects end-to-end, from framing an ambiguous problem and prototyping a solution, to training and productionizing models, to proving impact on top line metrics with front line teams.

You'll work on abuse behavior detection that spans multiple defenses, on AI agents that make trust decisions autonomously, and on the evaluation and benchmarking work that makes those decisions trustworthy. Much of this work is early: you will help decide what to build, not only how to build it, and you'll see it through to measurable impact on the platform.

A Typical Day
  • Frame and prototype ML and agentic solutions for problems that do not yet have an established approach, in partnership with product managers, data scientists, and front line defense teams.
  • Design, build, and productionize end-to-end Machine Learning pipelines — including feature engineering, model training, evaluation, and deployment — for both batch and real-time use cases.
  • Build and improve abuse behavior detection that generalizes across defenses.
  • Design, launch, and iterate on AI agents that automate trust decisions, including orchestration, tool interfaces, and the guardrails that hold quality steady as autonomy increases.
  • Build benchmarks, evaluation harnesses, and instrumentation that let us measure agentic and model decision quality objectively, and use them to drive real improvements.
  • Develop specialized models for trust and safety use cases, and use LLMs and AI agents to accelerate how we build models.
  • Write, review, and ship clean, testable code — whether training a new model, improving an existing pipeline, or optimizing a feature for scalability and reliability.
  • Work with large-scale structured and unstructured data to continuously improve ML models for Airbnb product, business, and operational use cases.
  • Partner with front line defense teams to validate solutions through experiments and holdouts, and quantify their impact on business and operational metrics.
  • Participate in code reviews, design discussions, and cross-team collaborations to contribute to a high-quality ML engineering culture.
Your Expertise
  • 5-10 years of industry experience in applied Machine Learning, with a track record of building and productionizing models at scale.
  • 1-2+ years of hands-on experience with LLMs and GenAI technologies, including building with agentic frameworks, orchestration, and evaluation.
  • Strong programming skills in Python (required) and familiarity with Scala, Java, or equivalent.
  • Solid understanding of Machine Learning best practices — e.g., training/serving skew minimization, A/B testing, feature engineering, model selection — and algorithms such as gradient boosted trees, neural networks, transformers, and deep learning.
  • Experience with ML frameworks and tooling such as TensorFlow, PyTorch, or equivalent.
  • Experience with data engineering and building end-to-end ML pipelines, including both batch and real-time systems.
  • Experience designing evaluation methodology for ML or LLM systems — benchmarks, ground truth, offline/online metrics, calibration.
  • Comfort with ambiguity and a bias toward action: you can take a loosely defined problem, scope it, prototype quickly, and drive it to a measurable outcome.
  • Exposure to architectural patterns of large, high-scale software applications (e.g., well-designed APIs, high-volume data pipelines, efficient algorithms).
  • Experience with test-driven development, incremental delivery, and deployment practices.
  • Experience with multimodal models (vision, document, or speech) is a plus.
  • Exposure to the Trust and Risk domain (e.g., fraud detection, anomaly detection, identity, account integrity) is a plus.
  • A Bachelor's, Master's, or PhD in CS/ML or a related field.
Your Location:

This position is US - Remote Eligible. The role may include occasional work at an Airbnb office or attendance at offsites, as agreed to with your manager. While the position is Remote Eligible, you must live in a state where Airbnb, Inc. has a registered entity. Click here for the up-to-date list of excluded states. This list is continuously evolving, so please check back with us if the state you live in is on the exclusion list. If your position is employed by another Airbnb entity, your recruiter will inform you what states you are eligible to work from.

Our Commitment To Inclusion & Belonging

Airbnb is committed to working with the broadest talent pool possible. We believe diverse ideas foster innovation and engagement, and allow us to attract creatively-led people, and to develop the best products, services and solutions. All qualified individuals are encouraged to apply.

We strive to also provide a disability inclusive application and interview process. If you are a candidate with a disability and require reasonable accommodation in order to submit an application, please contact us at: reasonableaccommodations@airbnb.com. Please include your full name, the role you’re applying for and the accommodation necessary to assist you with the recruiting process.

We ask that you only reach out to us if you are a candidate whose disability prevents you from being able to complete our online application.

How We'll Take Care Of You

Our job titles may span more than one career level. The actual base pay is dependent upon many factors, such as: training, transferable skills, work experience, business needs and market demands. The base pay range is subject to change and may be modified in the future. This role may also be eligible for bonus, equity, benefits, and Employee Travel Credits.

Pay Range

$200,000—$235,000 USD

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